Abstract

Based on the optimal decision tree algorithm, this paper proposes a student network behavior analysis model. Through training and predicting the academic performance of Beihang Grade 2013 undergraduates, it is found that students’ online behavior has a profound impact on students’ academic performance. To maintain a good learning state, students must strictly limit the time spent on the Internet in idle time, effectively control the time spent on the internet, and ensure that their daily sleep is not affected by the Internet behavior. The regularity of students’ life is positively correlated with their achievement ranking.

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